Senior Staff Solutions Engineer (NYC)

Crusoe

Denver (CO)

On-site

USD 175,000 - 250,000

Full time

14 days+
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Benefits offered by this job

Competitive compensation
Equity packages
Paid time off and holidays
Health, dental & vision insurance
HSA contributions
Parental leave
Life insurance & disability
Professional development
Mental health support
Commuter benefits
Cell phone stipend
401(k) with company match
Volunteer time off
Global travel insurance
Daily meals allowance
Location-specific perks

Job summary

Crusoe is seeking a Sr. to Senior Staff level Solutions Engineer to work with enterprise customers deploying AI/ML workloads on Crusoe’s GPU infrastructure. This role is hands-on and customer-facing, requiring deep expertise in Kubernetes, MLOps, and cloud infrastructure.

You’ll own the PoC, optimize workloads post-sale, and act as a technical voice between customers and engineering teams. Ideal candidates are fluent in containerized environments and can translate workloads across clouds.

Qualifications

  • 7+ years building and deploying containerized workloads on Kubernetes.
  • Deployment of ML frameworks (Ray, MLflow, Airflow) on Kubernetes for inference and training.
  • Hands-on cloud infrastructure knowledge across compute, storage, and networking (AWS, GCP, Azure).
  • Excellent customer-facing technical communication to gather requirements and lead engagements.
  • Strong Linux/CLI proficiency for troubleshooting and ops tasks.
  • Collaborative, cross-functional mindset with Engineering, Product, and Sales.

Responsibilities

  • Lead technical onboarding and deployment of complex AI/ML workloads for strategic enterprise customers—from POC to post-sales optimization.
  • Architect and deploy ML workloads using Kubernetes-based stacks (Ray, Kubeflow); design infrastructure for performance and efficiency.
  • Deploy and optimize AI/ML workloads directly on Crusoe infrastructure across container and hardware levels.
  • Assist customers in migrating workloads across AWS, Azure, and GCP; explain tradeoffs between cloud-native and Crusoe-native approaches.
  • Conduct workshops, live demos, and solution reviews; contribute to case studies and blogs.
  • Relay customer feedback to engineering and product teams to improve Crusoe’s platform.

Skills

Kubernetes expertise
MLOps deployment
Cloud infrastructure
Customer-facing communication
Linux proficiency
Cross-functional collaboration

Tools

Docker
Helm
Terraform
Ray
Kubeflow
MLflow
Airflow

Job description

Crusoe is on a mission to accelerate the abundance of energy and intelligence. As the only vertically integrated AI infrastructure company built from the ground up, we own and operate each layer of the stack — from electrons to tokens — to power the world’s most ambitious AI workloads. When you join Crusoe, you join a team that is building the future, faster.

We’re in the midst of the greatest industrial revolution of our time. The demand for AI compute is boundless, and power is a bottleneck. We’re solving that — with an energy-first approach that makes AI infrastructure better for the world and faster for the people innovating with AI.

We’re looking for problem-solving, opportunity-finding teammates with a sense of urgency, who believe in the scale of our ambition and thrive on a path not fully paved — people who want to grow their careers alongside a team of experts across energy, manufacturing, data center construction, and cloud services.

If you want to do the most meaningful work of your career, help our customers and partners advance their AI strategies, and be part of a high-performing team that believes in each other, come build with us at Crusoe.

About the Role:

Crusoe Cloud is seeking a Sr. to Senior Staff level Solutions Engineer to work closely with our most strategic enterprise customers deploying AI/ML workloads on Crusoe’s high-performance GPU infrastructure. This is a hands-on, customer-facing role requiring deep technical expertise in Kubernetes, MLOps, and cloud infrastructure.

You’ll guide customers through end-to-end deployment—owning the PoC process, optimizing workloads post-sale, and serving as a critical technical voice between our customers and engineering teams. Ideal candidates are passionate about AI infrastructure, fluent in containerized environments, and confident in translating workloads across cloud platforms.

What You’ll Be Working On:
  • Customer Enablement: Lead technical onboarding and deployment of complex AI/ML workloads with strategic enterprise customers—owning the POC through to post-sales optimization.

  • Kubernetes + MLOps Focus: Architect and deploy ML workloads using Kubernetes-based stacks (e.g., Ray, Kubeflow) Design infrastructure that balances performance, scalability, and efficiency.

  • Infrastructure-Centric Thinking: Go beyond abstracted services—deploy and optimize AI/ML workloads directly on Crusoe infrastructure. Ensure performance at the container and hardware level.

  • Cross-Cloud Translation: Help customers migrate and adapt workloads across AWS, Azure, and GCP. Understand and explain the tradeoffs between cloud-native and Crusoe-native approaches.

  • Technical Storytelling: Conduct workshops, live demos, and solution reviews. Contribute to case studies, solution briefs, and blog posts that highlight real-world customer success.

  • Voice of the Customer: Relay feedback to internal engineering and product teams to continuously improve Crusoe’s platform based on real-world implementation experience.

What You’ll Bring to the Team:
  • Deep Kubernetes Expertise: 7+ years building and deploying containerized workloads. Experience with Helm, Terraform, Docker, and multi-node orchestration a must.

  • MLOps Deployment Experience: Demonstrated success deploying ML frameworks (e.g., Ray, MLflow, Airflow) on Kubernetes—especially for inference and model training workflows.

  • Hands-on Cloud Infrastructure Knowledge:Familiarity with compute, storage, networking, and scaling in AWS, GCP, or Azure. Experience translating workloads across clouds is highly desirable.

  • Customer-Facing Technical Confidence: Able to navigate stakeholder conversations, gather requirements, lead technical engagements, and support customers in both pre- and post-sales environments.

  • Strong Linux and CLI Proficiency:Comfortable operating in Linux environments and troubleshooting infrastructure issues via CLI.

  • Collaborative Energy: Strong communication skills and eagerness to partner cross-functionally with Engineering, Product, and Sales to make customers successful.

Bonus Points
  • Experience with Ray, Kubeflow, or other distributed ML orchestration platforms

  • Exposure to Slurm, but with a primary focus on containerized MLOps over traditional HPC

  • Multi-cloud deployment or migration experience (especially AWS Crusoe transitions)

  • Content contributions (tech talks, blogs, public case studies)

Benefits:
  • Competitive compensation and equity packages

  • Restricted Stock Units

  • Paid time off, paid holidays & leave of absence programs

  • Comprehensive health, dental & vision insurance

  • Employer contributions to HSA account

  • Paid parental leave

  • Paid life insurance, short-term and long-term disability

  • Professional development & tuition reimbursement

  • Mental health & wellness support

  • Commuter benefits (parking & transit)

  • Cell phone stipend

  • 401(k) Retirement plan with company match up to 4% of salary

  • Volunteer time off

  • Global travel insurance & emergency assistance

  • Daily meals allowance

  • Additional perks & programs specific to location

Compensation Range

Compensation will be paid in the range of up to $175,000 - $250,000 + Bonus. Restricted Stock Units are included in all offers. Compensation to be determined by the applicants knowledge, education, and abilities, as well as internal equity and alignment with market data.

Crusoe is an Equal Opportunity Employer. Employment decisions are made without regard to race, color, religion, disability, genetic information, pregnancy, citizenship, marital status, sex/gender, sexual preference/ orientation, gender identity, age, veteran status, national origin, or any other status protected by law or regulation.

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